WO2014010192A1 - Procédé de codage d'image, procédé de décodage d'image, dispositif de codage d'image et dispositif de décodage d'image - Google Patents

Procédé de codage d'image, procédé de décodage d'image, dispositif de codage d'image et dispositif de décodage d'image Download PDF

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WO2014010192A1
WO2014010192A1 PCT/JP2013/004056 JP2013004056W WO2014010192A1 WO 2014010192 A1 WO2014010192 A1 WO 2014010192A1 JP 2013004056 W JP2013004056 W JP 2013004056W WO 2014010192 A1 WO2014010192 A1 WO 2014010192A1
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encoding
image
maximum number
reference candidate
view
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PCT/JP2013/004056
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English (en)
Japanese (ja)
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大作 小宮
西 孝啓
寿郎 笹井
陽司 柴原
敏康 杉尾
京子 谷川
徹 松延
健吾 寺田
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パナソニック株式会社
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Priority to JP2014524626A priority Critical patent/JPWO2014010192A1/ja
Priority to US14/411,930 priority patent/US9843819B2/en
Priority to EP13816103.9A priority patent/EP2871838B1/fr
Priority to CN201380036063.6A priority patent/CN104429075B/zh
Publication of WO2014010192A1 publication Critical patent/WO2014010192A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/50Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding
    • H04N19/597Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding specially adapted for multi-view video sequence encoding
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/30Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using hierarchical techniques, e.g. scalability
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/42Methods or arrangements for coding, decoding, compressing or decompressing digital video signals characterised by implementation details or hardware specially adapted for video compression or decompression, e.g. dedicated software implementation
    • H04N19/423Methods or arrangements for coding, decoding, compressing or decompressing digital video signals characterised by implementation details or hardware specially adapted for video compression or decompression, e.g. dedicated software implementation characterised by memory arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/50Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding
    • H04N19/503Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding involving temporal prediction
    • H04N19/51Motion estimation or motion compensation
    • H04N19/513Processing of motion vectors
    • H04N19/517Processing of motion vectors by encoding
    • H04N19/52Processing of motion vectors by encoding by predictive encoding
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/50Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding
    • H04N19/503Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding involving temporal prediction
    • H04N19/51Motion estimation or motion compensation
    • H04N19/573Motion compensation with multiple frame prediction using two or more reference frames in a given prediction direction
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/50Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding
    • H04N19/503Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding involving temporal prediction
    • H04N19/51Motion estimation or motion compensation
    • H04N19/577Motion compensation with bidirectional frame interpolation, i.e. using B-pictures
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/70Methods or arrangements for coding, decoding, compressing or decompressing digital video signals characterised by syntax aspects related to video coding, e.g. related to compression standards

Definitions

  • the present invention relates to an image encoding method and an image decoding method.
  • a moving image is composed of a plurality of pictures, and each picture is composed of a predetermined number of pixels. Encoding of moving images is performed for each picture, and encoding of each picture is performed in units of blocks that partition the pictures.
  • the amount of information is compressed by reducing the redundancy in the time direction and the spatial direction.
  • motion detection and motion compensation for a picture to be coded are performed by referring to a picture located in front of or behind the picture to be coded in time.
  • Prediction information is generated by performing in block units, and the difference between the prediction information and the information of the encoding target picture is encoded.
  • the picture that is temporally forward with respect to the encoding target picture is a picture that is earlier in display time than the encoding target picture (front picture), and is temporally rearward with respect to the encoding target picture.
  • the picture to be displayed is a picture (rear picture) whose display time is slower depending on the encoding target picture.
  • AVC Advanced Video Coding
  • any two pictures that are temporally forward or backward with respect to the encoding target picture to be encoded are referred to at the same time to be encoded. It is possible to perform motion compensation on a picture (see, for example, Non-Patent Document 1). Therefore, H.H.
  • the H.264 system when performing inter-picture predictive coding and inter-picture predictive decoding, it is necessary to store all the forward and backward pictures that may be referred to (hereinafter referred to as reference candidate pictures) in the picture memory. is there.
  • the present invention provides an image encoding method or image decoding method for performing multi-view video encoding or multi-view video decoding, and an image encoding method or image decoding method capable of efficiently using a memory area.
  • the purpose is to provide.
  • An image encoding method is an image encoding method for encoding a multi-view video, in which an encoding process level and a maximum image that can be processed by the image encoding apparatus and the image decoding apparatus Using the table indicating the relationship between the maximum number of pixels in the screen indicating the number of pixels and the maximum number of reference candidate images in non-multi-viewpoint encoding, the maximum number of pixels in the screen is determined from the level signal indicating the level of the encoding process.
  • a determination step for determining the maximum number of reference candidate images in non-multi-viewpoint encoding, using the maximum number of pixels in the screen, the image size of the input image, and the scale factor for multi-viewpoint video encoding A first calculation step of calculating a maximum number of reference candidate views used for inter-view prediction encoding, a maximum number of reference candidate views, and a maximum number of reference candidate images in the non-multi-view encoding; Using, and a second calculation step of calculating the maximum number of reference candidate images in the multi-view video coding.
  • the present invention is an image encoding method or image decoding method that performs multi-view video encoding or multi-view video decoding, and can provide an image encoding method or image decoding method that can efficiently use a memory area. .
  • FIG. 1 is a diagram for explaining management of a picture memory.
  • FIG. 2 is a diagram illustrating an example of a table indicating the correspondence between the level identifier, the maximum number of pixels in the screen, and the maximum buffer size.
  • FIG. 3 is a block diagram of the image coding apparatus according to Embodiment 1.
  • FIG. 4 is a block diagram of the MVC encoder according to the first embodiment.
  • FIG. 5 is a diagram illustrating an example of an input image of each view according to the first embodiment.
  • FIG. 6 is a diagram for explaining management of a picture memory corresponding to multi-view video coding according to the first embodiment.
  • FIG. 7 is a flowchart of the image encoding process according to the first embodiment.
  • FIG. 1 is a diagram for explaining management of a picture memory.
  • FIG. 2 is a diagram illustrating an example of a table indicating the correspondence between the level identifier, the maximum number of pixels in the screen, and the maximum buffer size.
  • FIG. 3 is
  • FIG. 8 is a diagram illustrating an example of a table indicating a correspondence relationship between the level identifier, the maximum number of pixels in the screen, the maximum buffer size, and the scale factor according to the first embodiment.
  • FIG. 9 is a block diagram of an image decoding apparatus according to Embodiment 2.
  • FIG. 10 is a flowchart of the image decoding process according to the second embodiment.
  • FIG. 11 is an overall configuration diagram of a content supply system that implements a content distribution service.
  • FIG. 12 is an overall configuration diagram of a digital broadcasting system.
  • FIG. 13 is a block diagram illustrating a configuration example of a television.
  • FIG. 14 is a block diagram illustrating a configuration example of an information reproducing / recording unit that reads and writes information from and on a recording medium that is an optical disk.
  • FIG. 15 is a diagram illustrating a structure example of a recording medium that is an optical disk.
  • FIG. 16A is a diagram illustrating an example of a mobile phone.
  • FIG. 16B is a block diagram illustrating a configuration example of a mobile phone.
  • FIG. 17 is a diagram showing a structure of multiplexed data.
  • FIG. 18 is a diagram schematically showing how each stream is multiplexed in the multiplexed data.
  • FIG. 19 is a diagram showing in more detail how the video stream is stored in the PES packet sequence.
  • FIG. 20 is a diagram illustrating the structure of TS packets and source packets in multiplexed data.
  • FIG. 21 is a diagram illustrating a data structure of the PMT.
  • FIG. 22 is a diagram showing an internal configuration of multiplexed data information.
  • FIG. 23 is a diagram showing an internal configuration of stream attribute information.
  • FIG. 24 is a diagram illustrating steps for identifying video data.
  • FIG. 25 is a block diagram illustrating a configuration example of an integrated circuit that implements the moving picture coding method and the moving picture decoding method according to each embodiment.
  • FIG. 26 is a diagram illustrating a configuration for switching the driving frequency.
  • FIG. 27 is a diagram illustrating steps for identifying video data and switching between driving frequencies.
  • FIG. 28 is a diagram illustrating an example of a lookup table in which video data standards are associated with drive frequencies.
  • FIG. 29A is a diagram illustrating an example of a configuration for sharing a module of a signal processing unit.
  • FIG. 29B is a diagram illustrating another example of a configuration for sharing a module of a signal processing unit.
  • a picture (reference picture) that is referenced in inter-picture predictive coding or inter-picture predictive decoding is stored in a picture memory for each block of a target picture that is a processing target of coding or decoding. Selected from a plurality of processed pictures. For example, when the target picture is a B picture that can refer to a maximum of two pictures, a maximum of two pictures selected from a plurality of processed pictures stored in the picture memory are used as reference pictures. Used. In addition, when the target picture is a P picture that can refer to only one picture, one picture selected from a plurality of processed pictures stored in the picture memory is used as a reference picture. .
  • reference candidate pictures which are reference picture candidates are a plurality of processed pictures in which image data is stored in the picture memory regardless of whether the target picture is a P picture or a B picture.
  • the number of reference pictures may be a considerable number regardless of the P picture and the B picture when considered in units of pictures.
  • the maximum number of reference pictures for the target picture is equal to the number of reference candidate pictures for the target picture.
  • Figure 1 shows H. 2 is a diagram for explaining specific picture memory management corresponding to the H.264 system.
  • FIG. the number of pictures that can be stored in the picture memory is four. That is, the reference candidate pictures that may be referred to are three pictures obtained by removing one picture to be processed from these four pictures.
  • reference candidate pictures are pictures P2 to P4 in which image data is stored in a picture memory. It is.
  • the pictures P1 to P5 are arranged in the encoding order (decoding order), and the pictures P1 to P5 are encoded or decoded in this order.
  • the decoded picture is a decoded picture other than a reference candidate picture that is referred to in inter-picture predictive decoding for the target picture (that is, a decoded picture that is not used as a reference picture)
  • a decoded picture that is not used as a reference picture
  • IPPPIPPPIPPP bit stream
  • the image decoding apparatus can know beforehand the capacity of the storage area of the picture memory to be mounted on the image decoding apparatus.
  • a value (MaxDpbMbs) of a required storage area capacity (a storage capacity of a picture memory to be mounted) is determined in advance in the standard.
  • MaxDpbMbs represents the capacity of a necessary storage area in advance by the number of blocks (macroblocks).
  • An image decoding apparatus compatible with the H.264 system is equipped with a picture memory having a capacity capable of storing the number of blocks (macroblocks) specified by MaxDpbMbs.
  • MaxDpbFrames Min (MaxDpbMbs / (PicWidthInMbs * FrameHeightInMbs), 16) (Formula 1)
  • PicWidthInMbs and FrameHeightInMbs are values indicating the width and height of the picture to be encoded by the number of macroblocks, respectively.
  • the upper limit value of MaxDpbFrames is limited to 16, but the value of MaxDpbFrames is variable depending on the size of the picture to be encoded. For example, if the size of the encoding target picture is large, the value of MaxDpbFrames is a small value. Conversely, if the size of the encoding target picture is small, the value of MaxDpbFrames is a large value.
  • the H.264 image encoding apparatus performs inter-picture prediction encoding within a range not exceeding the maximum number of reference candidate pictures (MaxDpbFrames), and calculates the number of reference candidate pictures (max_dec_frame_buffering) actually used for encoding.
  • the picture decoding apparatus is equipped with a picture memory having a storage capacity specified by MaxDpbMbs.
  • the picture decoding apparatus converts a picture size area (picture buffer) of encoded data into max_dec_frame_buffering (included in the encoded data). ⁇ MaxDpbFrames) is reserved for the decoding process of the encoded data.
  • the storage capacity of the picture memory to be mounted on the image decoding device must be determined in advance.
  • the maximum number of reference candidate pictures (MaxDpbFrames) is set to a variable value according to the picture size of the encoded data, whereby the memory area can be used efficiently and high-quality encoding can be achieved.
  • HEVC method High Efficiency Video Coding
  • MaxDpbSize maximum buffer size
  • FIG. 2 is a table T1 showing the correspondence between the level identifier value, the maximum number of pixels in the screen (MaxLumaFS), and the maximum number of reference candidate pictures (maximum buffer size: MaxDpbSize).
  • a unique maximum number of pixels in the screen (MaxLumaFS) and maximum buffer size (MaxDPBSsize) are set for each encoding level specified by the level identifier.
  • the table T1 shows 12 encoding levels, and each encoding level corresponds to the level identifier values (1) to (6).
  • the level identifier values (1) to (6) are associated with specific numerical values of the maximum number of pixels in the screen (MaxLumaFS) and specific numerical values of the maximum buffer size (MaxDPBSsize), respectively.
  • MaxLumaFS the maximum number of pixels in the screen
  • the maximum input image moving image
  • the image decoding device that decodes the encoded data.
  • the value of the maximum number of accumulated pixels (the storage capacity of the picture memory to be mounted in the image decoding apparatus) can be calculated by the following equation (Equation 2).
  • H Similarly to the H.264 system, the storage capacity of the picture memory to be mounted is defined according to the encoding level, and the image decoding apparatus knows in advance the capacity of the storage area of the picture memory to be mounted in the image decoding apparatus. be able to.
  • H.C. Unlike the H.264 system, since the maximum number of reference candidate pictures (MaxDpbSize) is defined as a fixed value (6) in the table T1, the memory area cannot be used efficiently.
  • An image encoding method is an image encoding method for encoding a multi-view video, in which an encoding process level and a maximum image that can be processed by the image encoding apparatus and the image decoding apparatus Using the table indicating the relationship between the maximum number of pixels in the screen indicating the number of pixels and the maximum number of reference candidate images in non-multi-viewpoint encoding, the maximum number of pixels in the screen is determined from the level signal indicating the level of the encoding process.
  • a determination step for determining the maximum number of reference candidate images in non-multi-viewpoint encoding, using the maximum number of pixels in the screen, the image size of the input image, and the scale factor for multi-viewpoint video encoding A first calculation step of calculating a maximum number of reference candidate views used for inter-view prediction encoding, a maximum number of reference candidate views, and a maximum number of reference candidate images in the non-multi-view encoding; Using, and a second calculation step of calculating the maximum number of reference candidate images in the multi-view video coding.
  • the image encoding method can appropriately calculate the maximum number of reference candidate pictures (reference candidate views) in multi-view video encoding.
  • the number of reference candidate pictures for inter-picture prediction or the number of reference candidate views for inter-view prediction can be changed according to the image size of the input image. Accordingly, the image encoding method can efficiently use the memory area.
  • MaxView Floor (mvcScaleFactor * MaxLumaFS / (PicHeight * PicWidth))
  • MaxView may be the reference candidate view
  • mvcScaleFactor may be the scale factor
  • MaxLumaFs may be the maximum number of pixels in the screen.
  • the image coding method can appropriately calculate the maximum number of reference candidate views.
  • the image encoding method can appropriately calculate the maximum number of reference candidate images in multi-view video encoding.
  • the number of reference candidate images in the multi-view video encoding used in the decode picture buffer is further set within a range not exceeding the maximum number of reference candidate images in the multi-view video encoding.
  • a setting step for setting may be included.
  • the image encoding method can appropriately set the number of reference candidate images in multi-view video encoding.
  • An image decoding method is an image decoding method for decoding multi-view video encoded data, from the data, the number of reference candidate images in multi-view video encoding, and an image An acquisition step of acquiring a size, and a step of securing a number of reference candidate images in the multi-view video encoding in a picture area of the image size in a decoded picture buffer.
  • the image decoding method can efficiently use the memory area.
  • the number of reference candidate images in the multi-view video encoding included in the data is the maximum screen indicating the level of encoding processing and the maximum number of pixels of an image that can be processed by the image encoding device and the image decoding device.
  • the maximum number of pixels in the screen and non-multi-view coding from the level signal indicating the level of the coding process
  • the determination step for determining the maximum number of reference candidate images, the maximum number of pixels in the screen, the image size of the input image, and the scale factor of multi-view video encoding, and used for inter-view prediction encoding A first calculation step of calculating the maximum number of reference candidate views to be performed, the maximum number of reference candidate views, and the maximum number of reference candidate images in the non-multi-view encoding.
  • the image decoding method can decode data in which the number of reference candidate views for inter-view prediction is appropriately set.
  • An image encoding device is an image encoding device that encodes a multi-view video, and includes a processing circuit and a storage device accessible from the processing circuit. Uses the storage device, the maximum number of pixels in the screen indicating the level of encoding processing, the maximum number of pixels of the image that can be processed by the image encoding device and the image decoding device, and reference candidates in non-multi-viewpoint encoding Determination that determines the maximum number of pixels in the screen and the maximum number of reference candidate images in non-multi-viewpoint encoding from the level signal indicating the level of the encoding process, using a table indicating the relationship with the maximum number of images
  • the maximum number of reference candidate views used for inter-view prediction encoding is calculated using the step, the maximum number of pixels in the screen, the image size of the input image, and the multi-view video encoding scale factor.
  • the image coding apparatus can appropriately calculate the maximum number of reference candidate pictures (reference candidate views) in multi-view video coding. Further, the image coding apparatus can change the number of reference candidate pictures for inter-picture prediction or the number of reference candidate views for inter-view prediction in accordance with the image size of the input image. Thereby, the image encoding apparatus can efficiently use the memory area.
  • An image decoding device is an image decoding device that decodes multi-viewpoint video encoded data, and includes a processing circuit and a storage device accessible from the processing circuit, The processing circuit uses the storage device to obtain, from the data, an acquisition step of acquiring the number of reference candidate images and image size in multi-view video encoding, and a picture area of the image size in a decoded picture buffer. Securing the number of reference candidate images in the multi-view video encoding.
  • the image decoding apparatus can use the memory area efficiently.
  • an image encoding / decoding device may include the image encoding device and the image decoding device.
  • FIG. 3 is a block diagram illustrating a configuration of an image encoding device (moving image encoding device) including a multi-view video encoding (MVC) encoder according to the present embodiment.
  • MVC multi-view video encoding
  • 3 includes an input image control unit 101, an MVC encoder 102, a level analysis unit 103, a maximum view number calculator 104, and an MVC maximum buffer size calculator 105.
  • the input image control unit 101 stores an input image signal 121 input for each picture for each view, and handles the stored extended view image 122 and base view image 123 for encoding each view in the MVC encoder 102. Transmit to the encoder. Further, the input image control unit 101 outputs information indicating the size of the input image (image size 125) to the maximum view number calculator 104.
  • This image size 125 includes information (PicHeight) indicating the number of vertical pixels of the input image and horizontal pixel number information (PicWidth) indicating the number of horizontal pixels of the input image.
  • the MVC encoder 102 generates the MVC bit stream 124 by performing multi-view video encoding on the input extended view image 122 and base view image 123.
  • the level analysis unit 103 is information indicating the maximum number of pixels in the screen that can be encoded based on a level identifier signal (level signal 126) indicating the level of the encoding process input by a user operation.
  • level signal 126 indicating the level of the encoding process input by a user operation.
  • the maximum number of pixels in the screen 127 (MaxLumaFS) and the maximum buffer size 128 (MaxDpbSize) indicating the maximum number of reference candidate pictures are determined.
  • the level analysis unit 103 has information on the table T1 shown in FIG.
  • the maximum view number calculator 104 includes the maximum number of pixels 127 in the screen output from the level analysis unit 103, the image size 125 output from the input image control unit 101, and a multi-view video encoding scale factor (mvcScaleFactor). Based on the above, the maximum view number 129 (MaxView) is calculated. Note that the maximum view number calculator 104 has a value of mvcScaleFactor in advance. That is, the scale factor is a predetermined coefficient.
  • the MVC maximum buffer size calculator 105 is based on the maximum buffer size 128 (MaxDpbSize) output from the level analysis unit 103 and the maximum view number 129 (MaxView) output from the maximum view number calculator 104.
  • MVC maximum buffer size 130 (maximum buffer size in multi-view video encoding: MvcMaxDpbSize) indicating the maximum number of reference candidate pictures in video encoding is calculated, and the calculated MVC maximum buffer size 130 is output to MVC encoder 102.
  • MvcMaxDpbSize is the decoded data stored in the picture buffer (decoded picture buffer: DPB) when performing inter-picture predictive coding or inter-picture predictive decoding on a picture to be coded (view to be coded) of a view. It is a value indicating the maximum number of pictures.
  • the maximum view number calculator 104 and the MVC maximum buffer size calculator 105 may calculate and output the output data by actually calculating numerical values based on the input data.
  • a table indicating a correspondence relationship with the corresponding output data value may be stored in advance, and the output data may be acquired by referring to the table based on the input data value.
  • FIG. 4 is a block diagram showing a configuration of the MVC encoder 102.
  • the MVC encoder 102 includes a base view encoding unit 142, an extended view encoding unit 141, and a view multiplexing unit 143, as shown in FIG.
  • the base view encoding unit 142 has the same function as a normal image encoding apparatus that does not perform multi-view video encoding, and generates a base view encoded signal 153 by encoding the base view image 123. Further, the base view encoding unit 142 outputs the reconstructed view image 151 of the base view obtained by decoding after decoding inside the base view encoding unit 142 to the extended view encoding unit 141 To do.
  • the extended view encoding unit 141 generates the extended view encoded signal 152 by encoding the extended view image 122 output from the input image control unit 101 using the reconstructed view image 151. Specifically, the extended view encoding unit 141 performs inter-picture prediction encoding using a reconstructed image of an extended view image that has already been encoded with respect to an encoding target picture (encoding target extended view image), One of the inter-view prediction encoding using the reconstructed image (reconstructed view image 151) of the base view image 123 is selected for each block, and the extended view image 122 is encoded.
  • the view multiplexing unit 143 performs multi-view video encoding by multiplexing the base view encoded signal 153 and the extended view encoded signal 152 that are encoding information of each view, that is, the base view and the extended view.
  • the MVC bit stream 124 which is a bit stream, is generated.
  • the MVC encoder 102 illustrated in FIG. 4 encodes two views, a base view and an extended view, as an example. However, by combining the extended view encoding unit 141 in multiple stages, two or more extended views can be encoded. It is possible to realize encoding of a multi-view video including the same.
  • FIG. 5 shows an example of an input image of each view in the MVC encoder 102.
  • This input image includes one base view and two extended views.
  • the image resolutions of the base view (View 1) and the extended views (View 2, View 3) are the same.
  • each view is an image taken at the same time from a slightly different viewpoint, and has a correlation with each other. Therefore, in the encoding of a certain view, another view can be used as a predicted image.
  • Multi-view video encoding is currently used as an encoding method for stereoscopic images (3D).
  • Multi-view video encoding can improve encoding efficiency by performing inter-picture prediction using a reconstructed image of another view as a reference image when encoding an extended view.
  • inter-view reference prediction
  • reconstructed images of other views are used as reference images for temporal inter-picture prediction (inter prediction) used in normal image coding.
  • inter prediction temporal inter-picture prediction
  • a reconstructed image of another view that is temporally different from the encoding target image cannot be used as a reference image.
  • inter-view prediction and temporal inter-picture prediction in the image coding apparatus is that the reference image is a picture of a different view or a temporally different picture of the same view.
  • the essential encoding method is the same.
  • the view to be referenced is selected.
  • the dotted arrows shown in FIG. 5 indicate reference destinations for inter-view prediction and inter-picture prediction.
  • the inter-view prediction of the extended view (View 2) the base view (View 1) is referred to.
  • the extended view (View 2) is referred to. Note that whether to perform inter-view prediction is switched in units of blocks.
  • the reference relationship (encoding order) between views is determined, but the reference relationship between views may be different if the time is different. That is, in the view at the same time, the extended view (View2) cannot refer to the extended view (View3), and the extended view (View3) cannot refer to the extended view (View2). View2) refers to the expanded view (View3), and at another time, the expanded view (View3) is allowed to refer to the expanded view (View2).
  • FIG. 6 is a diagram for explaining specific picture memory management corresponding to multi-view video coding.
  • inter-picture prediction can be selected.
  • FIG. 6 only inter-view prediction is selected for convenience of explanation. Show. That is, here, it is assumed that the MVC encoder 102 uses only inter-view prediction.
  • FIG. 6 shows a case where the number of pictures (views) that can store image data in the picture memory is four. That is, in this case, the reference candidate views that may be referred to are three pictures (views) obtained by excluding one picture (view) to be encoded from the four pictures (views). It becomes.
  • the reference candidate views are View 2 to View 4 in which image data is stored in the picture memory.
  • the reference candidate view must be a view in which the picture to be encoded can be referred to in accordance with the reference relationship between the views.
  • the capacity of the storage area of the picture memory to be mounted in the image decoding device cannot be determined. Therefore, it is necessary to provide a restriction on the maximum number of reference candidate views (MaxView) used in inter-view prediction encoding and inter-view prediction decoding.
  • MaxView the maximum number of reference candidate views
  • the maximum number of views that can actually be used in multi-view video encoding is 1024. If the maximum number of reference candidate views (MaxView) is fixed, the number of views is actually used in multi-view video encoding. There is a problem that memory is wasted when the number of views is small.
  • the number of views actually used in multi-view video encoding is large, there is a problem that high-quality encoding cannot be performed because the number of reference candidate views decreases.
  • inter-view prediction coding using a reference candidate view and inter-picture prediction (inter prediction) coding using a reference candidate picture is selected, and the selected prediction coding is performed.
  • MVC maximum buffer size 130 maximum buffer size in multi-view video encoding: MvcMaxDpbSize
  • MvcMaxDpbSize maximum number of reference candidate pictures in multi-view video encoding.
  • the storage capacity of a picture memory to be mounted on an image decoding apparatus must be determined in advance.
  • One of the objects of the present embodiment is to increase the maximum number of reference candidate pictures within the limited resources and enable encoding with higher image quality.
  • reference candidate pictures in multi-view video coding include reference candidate views in inter-view prediction coding and reference candidate pictures in inter-picture prediction (inter prediction) coding. Note that the picture size of the picture is the same as that of the view.
  • MvcMaxDpbSize is determined so that the memory area can be efficiently used according to the picture size of the coded data.
  • FIG. 7 is a flowchart of image encoding processing by the image encoding device 100 according to the present embodiment.
  • the configuration of the memory and the like of the image encoding device 100 and the image decoding device that may decode the encoded data before encoding the input image is selected from a plurality of predefined coding levels. Specifically, the encoding level is selected by the user with reference to the table T1, and a level signal 126 indicating a level identifier corresponding to the selected level is input to the level analysis unit 103 by a user operation. Is done.
  • the table T1 does not explicitly describe the maximum number of accumulated pixels (the storage capacity of the picture memory to be mounted).
  • a mathematical formula (formula 2) is used. )
  • the value of the maximum number of accumulated pixels required at the encoding level can be obtained.
  • equation (Equation 3) a value obtained by multiplying the value of the maximum number of accumulated pixels in the equation (Equation 2) by the scale factor (mvcScaleFactor) of multi-view image encoding. The maximum number of accumulated pixels in multi-view video encoding.
  • 3D encoding often employs a two-decoder configuration that uses a decoder that encodes a right-eye image and a decoder that encodes a left-eye image.
  • 2 is used as the value of mvcScaleFactor. It is done.
  • the maximum number of accumulated pixels indicates how many pixels the picture memory included in the image decoding apparatus corresponding to the image encoding apparatus 100 needs to be able to store.
  • the maximum number of accumulated pixels indicates the number of pixels corresponding to the maximum amount of image data that can be accumulated in the picture memory.
  • the picture memory of the image decoding apparatus that decodes the encoded bit stream from the image encoding apparatus 100 stores data of pictures such as reference candidate pictures, decoded pictures waiting to be displayed, and pictures to be decoded.
  • the maximum number of accumulated pixels is the total number of pixels of these pictures.
  • the level signal 126 is input to the level analysis unit 103. Then, the level analysis unit 103 refers to the table T1 (see FIG. 2) held inside, and determines the maximum in-screen pixel according to the encoding level indicated by the level signal 126 selected by the user.
  • the number 127 (MaxLumaFS) and the maximum number of reference candidate pictures (maximum buffer size 128: MaxDpbSize) are determined (S101).
  • the maximum buffer size 128 indicates the maximum number of reference candidate images in non-multi-view coding (normal coding that is not multi-view coding).
  • the maximum screen pixel number 127 (MaxLumaFS) is input to the maximum view number calculator 104, and the maximum buffer size 128 (MaxDpbSize) is input to the MVC maximum buffer size calculator 105.
  • image data of the input image signal 121 is input to the input image control unit 101 in the order of display time for each view
  • image data corresponding to each picture of the view is stored in a storage unit (not shown) in the input image control unit 101.
  • the stored image data is output from the storage unit to the MVC encoder 102 in the encoding order as the base view image 123 or the extended view image 122 for each view.
  • the image data is output to the MVC encoder 102 for each block constituting the picture.
  • the input image control unit 101 outputs information indicating the size of the input image (image size 125) to the maximum view number calculator 104.
  • the size of the block is variable, and blocks of various sizes may be mixed in the picture.
  • the encoding process in the image encoding device 100 is performed in units of blocks.
  • the image size 125 includes information (PicHeight) indicating the number of vertical pixels of the input image and horizontal pixel number information (PicWidth) indicating the number of horizontal pixels of the input image.
  • the maximum view number calculator 104 calculates the formula (Formula 4).
  • the maximum number of reference candidate views (maximum number of views 129: MaxView) used in inter-view prediction encoding and inter-view prediction decoding is calculated (S102).
  • MaxView Floor (mvcScaleFactor * MaxLumaFS / (PicHeight * PicWidth)) (Formula 4)
  • the maximum number of views 129 indicates the maximum number of reference candidate views. That is, the number (MaxView-1) of reference candidate views obtained by excluding the view to be encoded from the maximum view number 129 can be used for inter-view prediction.
  • the maximum view number 129 is a value that varies according to the image size 125. That is, the maximum view number 129 is a larger value when the image size 125 is small, and a smaller value when the image size 125 is large. Since the upper limit of the image size 125 is limited by the maximum in-screen pixel number 127 (MaxLumaFS), the maximum view number 129 is the minimum value (mvcScaleFactor) when the image size 125 is equal to the maximum in-screen pixel number 127 (MaxLumaFS). ) The maximum view number 129 calculated by the maximum view number calculator 104 is output to the MVC maximum buffer size calculator 105.
  • Equation (Equation 4) uses the predefined picture size (LumaFS) and the following equation or logical expression (Equation 4a) and (Equation 4b): ) May be substituted.
  • is a value determined in advance based on a predefined picture size (LumaFS), and the image encoding device and the image decoding device do not need to be dynamically acquired by calculation.
  • LumaFS picture size
  • is 2.
  • the image size 125 PicHeight * PicWidth
  • mvcScaleFactor * MaxLumaFS is multiplied by ⁇ as shown in Equation (Equation 4a).
  • MaxView in this case is twice that of MaxView (formula (formula 4b)) when the image size 125 (PicHeight * PicWidth) is larger than LumaFS.
  • can be set to 3 or 4 depending on how the picture size (LumaFS) is determined.
  • LumaFS_1 and LumaFS_2 instead of LumaFS, and to modify the above formula or logical formula ((Formula 4a) and (Formula 4b)) as follows.
  • mvcScaleFactor is a predetermined fixed value
  • the maximum view number calculator 104 holds the value of mvcScaleFactor inside.
  • the value of mvcScaleFactor is set according to the number of views of multi-view video coding (for example, set to a large value when the number of views is large).
  • the value of mvcScaleFactor cannot be made variable in order to predetermine the storage capacity of the picture memory to be mounted on the image decoding apparatus. Therefore, for example, the value of mvcScaleFactor may be changed according to the level. Specifically, the table T1 of FIG. 2 is expanded as shown in FIG.
  • the level analysis unit 103 outputs the corresponding mvcScaleFactor to the maximum view number calculator 104 based on the level signal 126 indicating the level identifier.
  • the MVC maximum buffer size calculator 105 performs multi-view video coding using Equation (Equation 5) based on the input maximum view number 129 (MaxView) and the maximum buffer size 128 (MaxDPBSsize).
  • the MVC maximum buffer size 130 (maximum buffer size in multi-view video encoding: MvcMaxDpbSize), which is the maximum number of reference candidate pictures, is calculated (S103).
  • MvcMaxDPBSsize MaxView * MaxDPBSsize (Formula 5)
  • MVC maximum buffer size 130 indicates the total number of reference candidate pictures (or views) to be stored in the picture memory.
  • the reference candidate picture (or view) has a picture size of the image size 125 output from the input image control unit 101.
  • the MvcMaxDPBSsize output from the MVC maximum buffer size calculator 105 is input to the MVC encoder 102.
  • the MVC encoder 102 uses a decoded picture buffer (DPB) used when multi-view video encoding is performed within a range not exceeding MvcMaxDPBSsize as shown in Equation (Equation 6), or when the encoded data is decoded by the MVC decoder.
  • DPB decoded picture buffer
  • the number of DPB pictures (views) (max_dec_pic_buffering) that is the number of pictures (views) of () is set (S104).
  • max_dec_pic_buffering is left to the image coding apparatus. For example, by setting max_dec_pic_buffering to the same value as MvcMaxDPBSize, the number of inter-picture prediction reference candidate pictures and inter-view prediction reference candidate views is maximized, so that higher-quality encoding can be expected. However, if the value of max_dec_pic_buffering is set to a large value, the encoding process becomes complicated and the processing load increases. In practice, the value of max_dec_pic_buffering is determined in consideration of the balance.
  • the MVC maximum buffer size calculator 105 may output MaxView and MaxDPBSsize to the MVC encoder 102 together with MvcMaxDPBSsize for use in the above allocation. Further, the MVC maximum buffer size calculator 105 may be provided in the MVC encoder 102, and MaxView output from the maximum view number calculator 104 and MaxDPBSSize output from the level analysis unit 103 may be directly input to the MVC encoder 102. With this configuration, the MVC encoder 102 sets the number of reference candidate views for inter-view prediction within a range not exceeding (MaxView-1), and inter-picture prediction within a range not exceeding (MaxDPBSsize-1). It is possible to set the number of reference candidate pictures.
  • the base view image 123 and the extended view image 122 output from the input image control unit 101 are input to the encoding unit of each corresponding view. That is, the base view image 123 is input to the base view encoding unit 142, and the extended view image 122 is input to the extended view encoding unit 141.
  • the MVC encoder 102 illustrated in FIG. 4 is configured to encode two views, a base view and an extended view, as an example, but by combining the extended view encoding unit 141 in multiple stages, two or more extended views are provided. It is possible to realize multi-view video encoding using views.
  • the base view encoding unit 142 has the same function as a normal image encoding device that does not perform multi-view video encoding, and encodes the base view image 123. Further, the base view encoding unit 142 outputs the reconstructed view image 151 of the base view obtained by decoding after decoding inside the base view encoding unit 142 to the extended view encoding unit 141 To do.
  • the extended view encoding unit 141 performs inter-view prediction encoding on the extended view image 122 output from the input image control unit 101 using the reconstructed view image 151. Note that the extended view encoding unit 141 can also perform inter-picture prediction (inter prediction) encoding using reconstructed images of pictures in the same extended view that are temporally different. Which encoding is used is determined for each block.
  • inter prediction inter-picture prediction
  • the view multiplexing unit 143 generates the MVC bit stream 124 that is a bit stream that is multi-view video encoded by multiplexing the encoding information of each view, that is, the base view and the extended view.
  • the MVC encoder 102 determines the value of max_dec_pic_buffering according to the equation (Equation 6). Then, the MVC encoder 102 reserves an area of the image size 125 (PicHeight * PicWidth) in the picture memory (not shown) inside the MVC encoder 102 by the number of max_dec_pic_buffering. As described above, the reserved area is allocated to a reference candidate view for inter-view prediction and a reference candidate picture for inter-picture prediction.
  • the MVC encoder 102 generates a bit stream that is determined at the time of encoding and includes the value of max_dec_pic_buffering used for encoding as one of the parameters in the sequence parameter set (SPS).
  • the sequence parameter set is a parameter set corresponding to a header that can be commonly used for one or more pictures.
  • the sequence parameter set includes a maximum number of pictures that can be referred to, an image size, video display information (VUI: Video Usability Information), and the like.
  • max_dec_pic_buffering is not limited to SPS, and may be included in other parameter sets such as a video parameter set (VPS). Further, the value of max_dec_pic_buffering may be included in supplemental information (SEI: Supplemental Enhancement Information). In this case, the value of max_dec_pic_buffering is notified to the image decoding apparatus by an SEI message.
  • SEI Supplemental Enhancement Information
  • the image coding apparatus 100 in a situation where the storage capacity of the picture memory is determined in advance (for example, Equation (Equation 3)), is a reference candidate in multi-view video coding.
  • the maximum number of pictures (views) (MvcMaxDpbSize) can be calculated appropriately.
  • the image encoding apparatus 100 can change the number of reference candidate pictures for inter-picture prediction or the number of reference candidate views for inter-view prediction in accordance with the picture size of encoded data (input image).
  • the memory area can be used efficiently.
  • FIG. 9 is a block diagram illustrating a configuration of an image decoding device 200 (moving image decoding device) including the MVC decoder according to the present embodiment.
  • the image decoding apparatus 200 receives a multi-view video encoded MVC bitstream 221 including one or more views, performs MVC decoding with an MVC decoder, and outputs one or more decoded output images 225 (views). Is output to a display device or the like.
  • the image decoding apparatus 200 decodes the MVC bitstream 124 encoded by the image encoding apparatus 100 according to Embodiment 1.
  • the image decoding apparatus 200 decodes encoded data 222 including one or more views, and a code string analysis unit 201 that acquires and analyzes data stored in the header area and SPS area of the input MVC bitstream 221. And an MVC decoder 202.
  • the code string analysis unit 201 acquires and analyzes data stored in the header area and the SPS area of the input MVC bitstream 221.
  • the SPS includes the maximum number of pictures that can be referred to, the image size, and video display information (VUI: Video Usability Information).
  • VUI Video Usability Information
  • the code string analysis unit 201 acquires the value of max_dec_pic_buffering included in the VUI.
  • the code string analysis unit 201 analyzes information included in the SEI message and acquires necessary information.
  • the MVC decoder 202 decodes the encoded data of the base view and the encoded data of the extended view included in the MVC bitstream 221 and outputs an output image 225 (view) obtained by the decoding.
  • parameter information output from the code stream analysis unit 201 and parameter information included in a lower layer (such as a slice header) of the bitstream and extracted by the MVC decoder 202 are used as parameters. It is done.
  • the parameter information output from the code string analysis unit 201 includes image size information 223 (PicHeight and PicWidth) and a DPB picture (view) number 224 (max_dec_pic_buffering).
  • FIG. 10 is a flowchart showing a flow of image decoding processing by the image decoding apparatus 200.
  • the code string analysis unit 201 first determines the image size 223 (PicHeight and PicWidth), the DPB picture (view) number 224 (max_dec_pic_buffering), from the MVC bitstream 224, Various kinds of information such as encoded data 222 are extracted (S201).
  • the extracted image size information 223 (PicHeight and PicWidth), the DPB picture (view) number 224 (max_dec_pic_buffering), and the encoded data 222 are output to the MVC decoder 202.
  • other extracted information is also output to the MVC decoder 202 as necessary.
  • the MVC decoder 202 Upon receiving the image size 223 (PicHeight, PicWidth) and the DPB picture (view) number 224 (max_dec_pic_buffering), the MVC decoder 202 secures a picture memory area (not shown) prior to the decoding process of the encoded data 222 (S202). ). Specifically, the MVC decoder 202 reserves the number of picture areas of the image size 223 (PicHeight * PicWidth) as the value of max_dec_pic_buffering in the picture memory (DPB). Note that the image decoding apparatus 200 is preinstalled with a picture memory having a storage capacity required for a supported encoding level among the encoding levels specified by the level identifier of the table T1 (see FIG. 2). is doing. That is, the image decoding apparatus 200 is equipped with a picture memory having a storage capacity of the maximum number of accumulated pixels (when multi-view video encoding) given by Equation (Equation 3).
  • the image coding apparatus 100 has the maximum buffer size (MVC) at the time of multi-view video coding so as not to exceed the maximum number of accumulated pixels (at the time of multi-view video coding).
  • Maximum buffer size 130: MvcMaxDPBSsize is determined.
  • the maximum buffer size (MvcMaxDPBSsize) at the time of multi-view video encoding indicates the total number of reference candidate pictures (or views) to be stored in the picture memory.
  • the value of max_dec_pic_buffering is determined by the image coding apparatus 100 so as not to exceed MvcMaxDPBSsize, as in Expression (Expression 6).
  • the image coding apparatus 100 ensures that the image decoding apparatus 200 can secure the number of picture areas of the image size 223 (PicHeight * PicWidth) as the value of max_dec_pic_buffering, and the MVC decoder 202 does not run out of areas.
  • a picture memory area can be secured.
  • the MVC decoder 202 decodes the encoded data of the base view and the encoded data of the extended view included in the encoded data 222, respectively, and outputs an output image 225 (view ) Is output.
  • picture data such as reference candidate pictures (views), decoded pictures waiting to be displayed, and pictures to be decoded are stored in the picture memory.
  • the image decoding apparatus 200 has the picture buffer (DPB) area based on the image size 223 (PicHeight * PicWidth) extracted by the code string analysis unit 201 and the value of max_dec_pic_buffering. Make sure. Accordingly, the image decoding apparatus 200 does not exceed the maximum number of accumulated pixels (maximum storage capacity) of the picture memory mounted on the image decoding apparatus 200, and does not break during decoding (picture buffer shortage, etc.).
  • the bitstream 221 can be decoded.
  • the image decoding apparatus 200 sets the maximum number of reference candidate pictures (views) in multi-view video coding (MvcMaxDpbSize) in the image size in a situation where the storage capacity of the picture memory is constant (for example, Equation (Equation 3)). Since the max_dec_pic_buffering determined by the image coding apparatus that can be calculated appropriately according to the above is used, the image decoding apparatus 200 according to the present embodiment can efficiently use the memory area.
  • each processing unit included in the image encoding device and the image decoding device according to the above embodiment is typically realized as an LSI that is an integrated circuit. These may be individually made into one chip, or may be made into one chip so as to include a part or all of them.
  • circuits are not limited to LSI, and may be realized by a dedicated circuit or a general-purpose processor.
  • An FPGA Field Programmable Gate Array
  • reconfigurable processor that can reconfigure the connection and setting of circuit cells inside the LSI may be used.
  • each component may be configured by dedicated hardware or may be realized by executing a software program suitable for each component.
  • Each component may be realized by a program execution unit such as a CPU or a processor reading and executing a software program recorded on a recording medium such as a hard disk or a semiconductor memory.
  • the image encoding device and the image decoding device include a processing circuit and a storage device (storage) that is electrically connected to the processing circuit (accessible from the control circuit).
  • the processing circuit includes at least one of dedicated hardware and a program execution unit. Further, when the processing circuit includes a program execution unit, the storage device stores a software program executed by the program execution unit. The processing circuit executes the image encoding method or the image decoding method according to the above embodiment using the storage device.
  • the present invention may be the software program or a non-transitory computer-readable recording medium on which the program is recorded.
  • the program can be distributed via a transmission medium such as the Internet.
  • division of functional blocks in the block diagram is an example, and a plurality of functional blocks can be realized as one functional block, a single functional block can be divided into a plurality of functions, or some functions can be transferred to other functional blocks. May be.
  • functions of a plurality of functional blocks having similar functions may be processed in parallel or time-division by a single hardware or software.
  • the order in which the steps included in the image encoding method or the image decoding method are executed is for illustrating the present invention specifically, and may be in an order other than the above. . Also, some of the above steps may be executed simultaneously (in parallel) with other steps.
  • the image encoding device and the image decoding device according to one or more aspects of the present invention have been described based on the embodiment, but the present invention is not limited to this embodiment. Unless it deviates from the gist of the present invention, the embodiment in which various modifications conceived by those skilled in the art have been made in the present embodiment, and forms constructed by combining components in different embodiments are also applicable to one or more of the present invention. It may be included within the scope of the embodiments.
  • the storage medium may be any medium that can record a program, such as a magnetic disk, an optical disk, a magneto-optical disk, an IC card, and a semiconductor memory.
  • the system has an image encoding / decoding device including an image encoding device using an image encoding method and an image decoding device using an image decoding method.
  • image encoding / decoding device including an image encoding device using an image encoding method and an image decoding device using an image decoding method.
  • Other configurations in the system can be appropriately changed according to circumstances.
  • FIG. 11 is a diagram showing an overall configuration of a content supply system ex100 that realizes a content distribution service.
  • a communication service providing area is divided into desired sizes, and base stations ex106, ex107, ex108, ex109, and ex110, which are fixed wireless stations, are installed in each cell.
  • the content supply system ex100 includes a computer ex111, a PDA (Personal Digital Assistant) ex112, a camera ex113, a mobile phone ex114, a game machine ex115 via the Internet ex101, the Internet service provider ex102, the telephone network ex104, and the base stations ex106 to ex110. Etc. are connected.
  • PDA Personal Digital Assistant
  • each device may be directly connected to the telephone network ex104 without going from the base station ex106, which is a fixed wireless station, to ex110.
  • the devices may be directly connected to each other via short-range wireless or the like.
  • the camera ex113 is a device that can shoot moving images such as a digital video camera
  • the camera ex116 is a device that can shoot still images and movies such as a digital camera.
  • the mobile phone ex114 is a GSM (registered trademark) (Global System for Mobile Communications) system, a CDMA (Code Division Multiple Access) system, a W-CDMA (Wideband-Code Division Multiple Access) system, or an LTE (Long Terminal Term Evolution). It is possible to use any of the above-mentioned systems, HSPA (High Speed Packet Access) mobile phone, PHS (Personal Handyphone System), or the like.
  • the camera ex113 and the like are connected to the streaming server ex103 through the base station ex109 and the telephone network ex104, thereby enabling live distribution and the like.
  • live distribution content that is shot by a user using the camera ex113 (for example, music live video) is encoded as described in each of the above embodiments (that is, in one aspect of the present invention).
  • the streaming server ex103 stream-distributes the content data transmitted to the requested client. Examples of the client include a computer ex111, a PDA ex112, a camera ex113, a mobile phone ex114, and a game machine ex115 that can decode the encoded data.
  • Each device that receives the distributed data decodes the received data and reproduces it (that is, functions as an image decoding device according to one embodiment of the present invention).
  • the captured data may be encoded by the camera ex113, the streaming server ex103 that performs data transmission processing, or may be shared with each other.
  • the decryption processing of the distributed data may be performed by the client, the streaming server ex103, or may be performed in common with each other.
  • still images and / or moving image data captured by the camera ex116 may be transmitted to the streaming server ex103 via the computer ex111.
  • the encoding process in this case may be performed by any of the camera ex116, the computer ex111, and the streaming server ex103, or may be performed in a shared manner.
  • these encoding / decoding processes are generally performed in the computer ex111 and the LSI ex500 included in each device.
  • the LSI ex500 may be configured as a single chip or a plurality of chips.
  • moving image encoding / decoding software is incorporated into some recording medium (CD-ROM, flexible disk, hard disk, etc.) that can be read by the computer ex111, etc., and encoding / decoding processing is performed using the software. May be.
  • moving image data acquired by the camera may be transmitted.
  • the moving image data at this time is data encoded by the LSI ex500 included in the mobile phone ex114.
  • the streaming server ex103 may be a plurality of servers or a plurality of computers, and may process, record, and distribute data in a distributed manner.
  • the encoded data can be received and reproduced by the client.
  • the information transmitted by the user can be received, decrypted and reproduced by the client in real time, and personal broadcasting can be realized even for a user who does not have special rights or facilities.
  • the digital broadcast system ex200 also includes at least the moving image encoding device (image encoding device) or the moving image decoding according to each of the above embodiments. Any of the devices (image decoding devices) can be incorporated.
  • the broadcast station ex201 multiplexed data obtained by multiplexing music data and the like on video data is transmitted to a communication or satellite ex202 via radio waves.
  • This video data is data encoded by the moving image encoding method described in each of the above embodiments (that is, data encoded by the image encoding apparatus according to one aspect of the present invention).
  • the broadcasting satellite ex202 transmits a radio wave for broadcasting, and this radio wave is received by a home antenna ex204 capable of receiving satellite broadcasting.
  • the received multiplexed data is decoded and reproduced by an apparatus such as the television (receiver) ex300 or the set top box (STB) ex217 (that is, functions as an image decoding apparatus according to one embodiment of the present invention).
  • a reader / recorder ex218 that reads and decodes multiplexed data recorded on a recording medium ex215 such as a DVD or a BD, or encodes a video signal on the recording medium ex215 and, in some cases, multiplexes and writes it with a music signal. It is possible to mount the moving picture decoding apparatus or moving picture encoding apparatus described in the above embodiments. In this case, the reproduced video signal is displayed on the monitor ex219, and the video signal can be reproduced in another device or system using the recording medium ex215 on which the multiplexed data is recorded.
  • a moving picture decoding apparatus may be mounted in a set-top box ex217 connected to a cable ex203 for cable television or an antenna ex204 for satellite / terrestrial broadcasting and displayed on the monitor ex219 of the television.
  • the moving picture decoding apparatus may be incorporated in the television instead of the set top box.
  • FIG. 13 is a diagram illustrating a television (receiver) ex300 that uses the video decoding method and the video encoding method described in each of the above embodiments.
  • the television ex300 obtains or outputs multiplexed data in which audio data is multiplexed with video data via the antenna ex204 or the cable ex203 that receives the broadcast, and demodulates the received multiplexed data.
  • the modulation / demodulation unit ex302 that modulates multiplexed data to be transmitted to the outside, and the demodulated multiplexed data is separated into video data and audio data, or the video data and audio data encoded by the signal processing unit ex306 Is provided with a multiplexing / demultiplexing unit ex303.
  • the television ex300 also decodes the audio data and the video data, or encodes the information, the audio signal processing unit ex304, the video signal processing unit ex305 (the image encoding device or the image according to one embodiment of the present invention) A signal processing unit ex306 that functions as a decoding device), a speaker ex307 that outputs the decoded audio signal, and an output unit ex309 that includes a display unit ex308 such as a display that displays the decoded video signal. Furthermore, the television ex300 includes an interface unit ex317 including an operation input unit ex312 that receives an input of a user operation. Furthermore, the television ex300 includes a control unit ex310 that performs overall control of each unit, and a power supply circuit unit ex311 that supplies power to each unit.
  • the interface unit ex317 includes a bridge unit ex313 connected to an external device such as a reader / recorder ex218, a recording unit ex216 such as an SD card, and an external recording unit such as a hard disk.
  • a driver ex315 for connecting to a medium, a modem ex316 for connecting to a telephone network, and the like may be included.
  • the recording medium ex216 is capable of electrically recording information by using a nonvolatile / volatile semiconductor memory element to be stored.
  • Each part of the television ex300 is connected to each other via a synchronous bus.
  • the television ex300 receives a user operation from the remote controller ex220 or the like, and demultiplexes the multiplexed data demodulated by the modulation / demodulation unit ex302 by the multiplexing / demultiplexing unit ex303 based on the control of the control unit ex310 having a CPU or the like. Furthermore, in the television ex300, the separated audio data is decoded by the audio signal processing unit ex304, and the separated video data is decoded by the video signal processing unit ex305 using the decoding method described in each of the above embodiments.
  • the decoded audio signal and video signal are output from the output unit ex309 to the outside. At the time of output, these signals may be temporarily stored in the buffers ex318, ex319, etc. so that the audio signal and the video signal are reproduced in synchronization. Also, the television ex300 may read multiplexed data from recording media ex215 and ex216 such as a magnetic / optical disk and an SD card, not from broadcasting. Next, a configuration in which the television ex300 encodes an audio signal or a video signal and transmits the signal to the outside or to a recording medium will be described.
  • the television ex300 receives a user operation from the remote controller ex220 and the like, encodes an audio signal with the audio signal processing unit ex304, and converts the video signal with the video signal processing unit ex305 based on the control of the control unit ex310. Encoding is performed using the encoding method described in (1).
  • the encoded audio signal and video signal are multiplexed by the multiplexing / demultiplexing unit ex303 and output to the outside. When multiplexing, these signals may be temporarily stored in the buffers ex320, ex321, etc. so that the audio signal and the video signal are synchronized.
  • a plurality of buffers ex318, ex319, ex320, and ex321 may be provided as illustrated, or one or more buffers may be shared. Further, in addition to the illustrated example, data may be stored in the buffer as a buffer material that prevents system overflow and underflow, for example, between the modulation / demodulation unit ex302 and the multiplexing / demultiplexing unit ex303.
  • the television ex300 has a configuration for receiving AV input of a microphone and a camera, and performs encoding processing on the data acquired from them. Also good.
  • the television ex300 has been described as a configuration capable of the above-described encoding processing, multiplexing, and external output, but these processing cannot be performed, and only the above-described reception, decoding processing, and external output are possible. It may be a configuration.
  • the decoding process or the encoding process may be performed by either the television ex300 or the reader / recorder ex218,
  • the reader / recorder ex218 may share with each other.
  • FIG. 14 shows a configuration of the information reproducing / recording unit ex400 when data is read from or written to an optical disk.
  • the information reproducing / recording unit ex400 includes elements ex401, ex402, ex403, ex404, ex405, ex406, and ex407 described below.
  • the optical head ex401 irradiates a laser spot on the recording surface of the recording medium ex215 that is an optical disk to write information, and detects information reflected from the recording surface of the recording medium ex215 to read the information.
  • the modulation recording unit ex402 electrically drives a semiconductor laser built in the optical head ex401 and modulates the laser beam according to the recording data.
  • the reproduction demodulator ex403 amplifies the reproduction signal obtained by electrically detecting the reflected light from the recording surface by the photodetector built in the optical head ex401, separates and demodulates the signal component recorded on the recording medium ex215, and is necessary To play back information.
  • the buffer ex404 temporarily holds information to be recorded on the recording medium ex215 and information reproduced from the recording medium ex215.
  • the disk motor ex405 rotates the recording medium ex215.
  • the servo control unit ex406 moves the optical head ex401 to a predetermined information track while controlling the rotational drive of the disk motor ex405, and performs a laser spot tracking process.
  • the system control unit ex407 controls the entire information reproduction / recording unit ex400.
  • the system control unit ex407 uses various types of information held in the buffer ex404, and generates and adds new information as necessary.
  • the modulation recording unit ex402, the reproduction demodulation unit This is realized by recording / reproducing information through the optical head ex401 while operating the ex403 and the servo control unit ex406 in a coordinated manner.
  • the system control unit ex407 includes, for example, a microprocessor, and executes these processes by executing a read / write program.
  • the optical head ex401 has been described as irradiating a laser spot.
  • a configuration in which higher-density recording is performed using near-field light may be used.
  • FIG. 15 shows a schematic diagram of a recording medium ex215 that is an optical disk.
  • Guide grooves grooves
  • address information indicating the absolute position on the disc is recorded in advance on the information track ex230 by changing the shape of the groove.
  • This address information includes information for specifying the position of the recording block ex231 that is a unit for recording data, and the recording block is specified by reproducing the information track ex230 and reading the address information in a recording or reproducing apparatus.
  • the recording medium ex215 includes a data recording area ex233, an inner peripheral area ex232, and an outer peripheral area ex234.
  • the area used for recording user data is the data recording area ex233, and the inner circumference area ex232 and the outer circumference area ex234 arranged on the inner or outer circumference of the data recording area ex233 are used for specific purposes other than user data recording. Used.
  • the information reproducing / recording unit ex400 reads / writes encoded audio data, video data, or multiplexed data obtained by multiplexing these data with respect to the data recording area ex233 of the recording medium ex215.
  • an optical disk such as a single-layer DVD or BD has been described as an example.
  • an optical disc with a multi-dimensional recording / reproducing structure such as recording information using light of different wavelengths in the same place on the disc, or recording different layers of information from various angles. It may be.
  • the car ex210 having the antenna ex205 can receive data from the satellite ex202 and the like, and the moving image can be reproduced on a display device such as the car navigation ex211 that the car ex210 has.
  • the configuration of the car navigation ex211 may include a configuration in which a GPS receiving unit is added to the configuration illustrated in FIG. 13, and the same may be applied to the computer ex111, the mobile phone ex114, and the like.
  • FIG. 16A is a diagram showing the mobile phone ex114 using the moving picture decoding method and the moving picture encoding method described in the above embodiment.
  • the mobile phone ex114 includes an antenna ex350 for transmitting and receiving radio waves to and from the base station ex110, a camera unit ex365 capable of capturing video and still images, a video captured by the camera unit ex365, a video received by the antenna ex350, and the like Is provided with a display unit ex358 such as a liquid crystal display for displaying the decrypted data.
  • the mobile phone ex114 further includes a main body unit having an operation key unit ex366, an audio output unit ex357 such as a speaker for outputting audio, an audio input unit ex356 such as a microphone for inputting audio, a captured video,
  • an audio input unit ex356 such as a microphone for inputting audio
  • a captured video In the memory unit ex367 for storing encoded data or decoded data such as still images, recorded audio, received video, still images, mails, or the like, or an interface unit with a recording medium for storing data
  • a slot ex364 is provided.
  • the mobile phone ex114 has a power supply circuit part ex361, an operation input control part ex362, and a video signal processing part ex355 with respect to a main control part ex360 that comprehensively controls each part of the main body including the display part ex358 and the operation key part ex366.
  • a camera interface unit ex363, an LCD (Liquid Crystal Display) control unit ex359, a modulation / demodulation unit ex352, a multiplexing / demultiplexing unit ex353, an audio signal processing unit ex354, a slot unit ex364, and a memory unit ex367 are connected to each other via a bus ex370. ing.
  • the power supply circuit unit ex361 starts up the mobile phone ex114 in an operable state by supplying power from the battery pack to each unit.
  • the cellular phone ex114 converts the audio signal collected by the audio input unit ex356 in the voice call mode into a digital audio signal by the audio signal processing unit ex354 based on the control of the main control unit ex360 having a CPU, a ROM, a RAM, and the like. Then, this is subjected to spectrum spread processing by the modulation / demodulation unit ex352, digital-analog conversion processing and frequency conversion processing are performed by the transmission / reception unit ex351, and then transmitted via the antenna ex350.
  • the mobile phone ex114 also amplifies the received data received via the antenna ex350 in the voice call mode, performs frequency conversion processing and analog-digital conversion processing, performs spectrum despreading processing by the modulation / demodulation unit ex352, and performs voice signal processing unit After being converted into an analog audio signal by ex354, this is output from the audio output unit ex357.
  • the text data of the e-mail input by operating the operation key unit ex366 of the main unit is sent to the main control unit ex360 via the operation input control unit ex362.
  • the main control unit ex360 performs spread spectrum processing on the text data in the modulation / demodulation unit ex352, performs digital analog conversion processing and frequency conversion processing in the transmission / reception unit ex351, and then transmits the text data to the base station ex110 via the antenna ex350.
  • almost the reverse process is performed on the received data and output to the display unit ex358.
  • the video signal processing unit ex355 compresses the video signal supplied from the camera unit ex365 by the moving image encoding method described in the above embodiments. Encode (that is, function as an image encoding device according to an aspect of the present invention), and send the encoded video data to the multiplexing / demultiplexing unit ex353.
  • the audio signal processing unit ex354 encodes the audio signal picked up by the audio input unit ex356 while the camera unit ex365 images a video, a still image, etc., and sends the encoded audio data to the multiplexing / separating unit ex353. To do.
  • the multiplexing / demultiplexing unit ex353 multiplexes the encoded video data supplied from the video signal processing unit ex355 and the encoded audio data supplied from the audio signal processing unit ex354 by a predetermined method, and is obtained as a result.
  • the multiplexed data is subjected to spread spectrum processing by the modulation / demodulation unit (modulation / demodulation circuit unit) ex352, digital-analog conversion processing and frequency conversion processing by the transmission / reception unit ex351, and then transmitted via the antenna ex350.
  • the multiplexing / separating unit ex353 separates the multiplexed data into a video data bit stream and an audio data bit stream, and performs video signal processing on the video data encoded via the synchronization bus ex370.
  • the encoded audio data is supplied to the audio signal processing unit ex354 while being supplied to the unit ex355.
  • the video signal processing unit ex355 decodes the video signal by decoding using the video decoding method corresponding to the video encoding method described in each of the above embodiments (that is, an image according to an aspect of the present invention).
  • video and still images included in the moving image file linked to the home page are displayed from the display unit ex358 via the LCD control unit ex359.
  • the audio signal processing unit ex354 decodes the audio signal, and the audio is output from the audio output unit ex357.
  • the terminal such as the mobile phone ex114 is referred to as a transmission terminal having only an encoder and a receiving terminal having only a decoder.
  • a transmission terminal having only an encoder
  • a receiving terminal having only a decoder.
  • multiplexed data in which music data or the like is multiplexed with video data is received and transmitted, but data in which character data or the like related to video is multiplexed in addition to audio data It may be video data itself instead of multiplexed data.
  • the moving picture encoding method or the moving picture decoding method shown in each of the above embodiments can be used in any of the above-described devices / systems. The described effect can be obtained.
  • Embodiment 4 The moving picture coding method or apparatus shown in the above embodiments and the moving picture coding method or apparatus compliant with different standards such as MPEG-2, MPEG4-AVC, and VC-1 are appropriately switched as necessary. Thus, it is also possible to generate video data.
  • multiplexed data obtained by multiplexing audio data or the like with video data is configured to include identification information indicating which standard the video data conforms to.
  • identification information indicating which standard the video data conforms to.
  • FIG. 17 is a diagram showing a structure of multiplexed data.
  • multiplexed data is obtained by multiplexing one or more of a video stream, an audio stream, a presentation graphics stream (PG), and an interactive graphics stream.
  • the video stream indicates the main video and sub-video of the movie
  • the audio stream (IG) indicates the main audio portion of the movie and the sub-audio mixed with the main audio
  • the presentation graphics stream indicates the subtitles of the movie.
  • the main video indicates a normal video displayed on the screen
  • the sub-video is a video displayed on a small screen in the main video.
  • the interactive graphics stream indicates an interactive screen created by arranging GUI components on the screen.
  • the video stream is encoded by the moving image encoding method or apparatus shown in the above embodiments, or the moving image encoding method or apparatus conforming to the conventional standards such as MPEG-2, MPEG4-AVC, and VC-1. ing.
  • the audio stream is encoded by a method such as Dolby AC-3, Dolby Digital Plus, MLP, DTS, DTS-HD, or linear PCM.
  • Each stream included in the multiplexed data is identified by PID. For example, 0x1011 for video streams used for movie images, 0x1100 to 0x111F for audio streams, 0x1200 to 0x121F for presentation graphics, 0x1400 to 0x141F for interactive graphics streams, 0x1B00 to 0x1B1F are assigned to video streams used for sub-pictures, and 0x1A00 to 0x1A1F are assigned to audio streams used for sub-audio mixed with the main audio.
  • FIG. 18 is a diagram schematically showing how multiplexed data is multiplexed.
  • a video stream ex235 composed of a plurality of video frames and an audio stream ex238 composed of a plurality of audio frames are converted into PES packet sequences ex236 and ex239, respectively, and converted into TS packets ex237 and ex240.
  • the data of the presentation graphics stream ex241 and interactive graphics ex244 are converted into PES packet sequences ex242 and ex245, respectively, and further converted into TS packets ex243 and ex246.
  • the multiplexed data ex247 is configured by multiplexing these TS packets into one stream.
  • FIG. 19 shows in more detail how the video stream is stored in the PES packet sequence.
  • the first row in FIG. 19 shows a video frame sequence of the video stream.
  • the second level shows a PES packet sequence.
  • a plurality of Video Presentation Units in a video stream are divided for each picture and stored in the payload of the PES packet.
  • Each PES packet has a PES header, and a PTS (Presentation Time-Stamp) that is a display time of a picture and a DTS (Decoding Time-Stamp) that is a decoding time of a picture are stored in the PES header.
  • PTS Presentation Time-Stamp
  • DTS Decoding Time-Stamp
  • FIG. 20 shows the format of TS packets that are finally written in the multiplexed data.
  • the TS packet is a 188-byte fixed-length packet composed of a 4-byte TS header having information such as a PID for identifying a stream and a 184-byte TS payload for storing data.
  • the PES packet is divided and stored in the TS payload.
  • a 4-byte TP_Extra_Header is added to a TS packet, forms a 192-byte source packet, and is written in multiplexed data.
  • TP_Extra_Header information such as ATS (Arrival_Time_Stamp) is described.
  • ATS indicates the transfer start time of the TS packet to the PID filter of the decoder.
  • Source packets are arranged in the multiplexed data as shown in the lower part of FIG. 20, and the number incremented from the head of the multiplexed data is called SPN (source packet number).
  • TS packets included in the multiplexed data include PAT (Program Association Table), PMT (Program Map Table), PCR (Program Clock Reference), and the like in addition to each stream such as video / audio / caption.
  • PAT indicates what the PID of the PMT used in the multiplexed data is, and the PID of the PAT itself is registered as 0.
  • the PMT has the PID of each stream such as video / audio / subtitles included in the multiplexed data and the attribute information of the stream corresponding to each PID, and has various descriptors related to the multiplexed data.
  • the descriptor includes copy control information for instructing permission / non-permission of copying of multiplexed data.
  • the PCR corresponds to the ATS in which the PCR packet is transferred to the decoder. Contains STC time information.
  • FIG. 21 is a diagram for explaining the data structure of the PMT in detail.
  • a PMT header describing the length of data included in the PMT is arranged at the head of the PMT.
  • a plurality of descriptors related to multiplexed data are arranged.
  • the copy control information and the like are described as descriptors.
  • a plurality of pieces of stream information regarding each stream included in the multiplexed data are arranged.
  • the stream information includes a stream descriptor in which a stream type, a stream PID, and stream attribute information (frame rate, aspect ratio, etc.) are described to identify a compression codec of the stream.
  • the multiplexed data is recorded together with the multiplexed data information file.
  • the multiplexed data information file is management information of multiplexed data, has a one-to-one correspondence with the multiplexed data, and includes multiplexed data information, stream attribute information, and an entry map.
  • the multiplexed data information includes a system rate, a reproduction start time, and a reproduction end time as shown in FIG.
  • the system rate indicates a maximum transfer rate of multiplexed data to a PID filter of a system target decoder described later.
  • the ATS interval included in the multiplexed data is set to be equal to or less than the system rate.
  • the playback start time is the PTS of the first video frame of the multiplexed data
  • the playback end time is set by adding the playback interval for one frame to the PTS of the video frame at the end of the multiplexed data.
  • the attribute information for each stream included in the multiplexed data is registered for each PID.
  • the attribute information has different information for each video stream, audio stream, presentation graphics stream, and interactive graphics stream.
  • the video stream attribute information includes the compression codec used to compress the video stream, the resolution of the individual picture data constituting the video stream, the aspect ratio, and the frame rate. It has information such as how much it is.
  • the audio stream attribute information includes the compression codec used to compress the audio stream, the number of channels included in the audio stream, the language supported, and the sampling frequency. With information. These pieces of information are used for initialization of the decoder before the player reproduces it.
  • the stream type included in the PMT is used.
  • video stream attribute information included in the multiplexed data information is used.
  • the video encoding shown in each of the above embodiments for the stream type or video stream attribute information included in the PMT.
  • FIG. 24 shows steps of the moving picture decoding method according to the present embodiment.
  • step exS100 the stream type included in the PMT or the video stream attribute information included in the multiplexed data information is acquired from the multiplexed data.
  • step exS101 it is determined whether or not the stream type or the video stream attribute information indicates multiplexed data generated by the moving picture encoding method or apparatus described in the above embodiments. To do.
  • step exS102 the above embodiments are performed. Decoding is performed by the moving picture decoding method shown in the form.
  • the conventional information Decoding is performed by a moving image decoding method compliant with the standard.
  • FIG. 25 shows a configuration of an LSI ex500 that is made into one chip.
  • the LSI ex500 includes elements ex501, ex502, ex503, ex504, ex505, ex506, ex507, ex508, and ex509 described below, and each element is connected via a bus ex510.
  • the power supply circuit unit ex505 is activated to an operable state by supplying power to each unit when the power supply is on.
  • the LSI ex500 uses the AV I / O ex509 to perform the microphone ex117 and the camera ex113 based on the control of the control unit ex501 including the CPU ex502, the memory controller ex503, the stream controller ex504, the driving frequency control unit ex512, and the like.
  • the AV signal is input from the above.
  • the input AV signal is temporarily stored in an external memory ex511 such as SDRAM.
  • the accumulated data is divided into a plurality of times as appropriate according to the processing amount and the processing speed and sent to the signal processing unit ex507, and the signal processing unit ex507 encodes an audio signal and / or video. Signal encoding is performed.
  • the encoding process of the video signal is the encoding process described in the above embodiments.
  • the signal processing unit ex507 further performs processing such as multiplexing the encoded audio data and the encoded video data according to circumstances, and outputs the result from the stream I / Oex 506 to the outside.
  • the output multiplexed data is transmitted to the base station ex107 or written to the recording medium ex215. It should be noted that data should be temporarily stored in the buffer ex508 so as to be synchronized when multiplexing.
  • the memory ex511 is described as an external configuration of the LSI ex500.
  • a configuration included in the LSI ex500 may be used.
  • the number of buffers ex508 is not limited to one, and a plurality of buffers may be provided.
  • the LSI ex500 may be made into one chip or a plurality of chips.
  • control unit ex501 includes the CPU ex502, the memory controller ex503, the stream controller ex504, the drive frequency control unit ex512, and the like, but the configuration of the control unit ex501 is not limited to this configuration.
  • the signal processing unit ex507 may further include a CPU.
  • the CPU ex502 may be configured to include a signal processing unit ex507 or, for example, an audio signal processing unit that is a part of the signal processing unit ex507.
  • the control unit ex501 is configured to include a signal processing unit ex507 or a CPU ex502 having a part thereof.
  • LSI LSI
  • IC system LSI
  • super LSI ultra LSI depending on the degree of integration
  • the method of circuit integration is not limited to LSI, and implementation with a dedicated circuit or a general-purpose processor is also possible.
  • An FPGA Field Programmable Gate Array
  • Such a programmable logic device typically loads or reads a program constituting software or firmware from a memory or the like, so that the moving image encoding method or the moving image described in each of the above embodiments is used.
  • An image decoding method can be performed.
  • FIG. 26 shows a configuration ex800 in the present embodiment.
  • the drive frequency switching unit ex803 sets the drive frequency high when the video data is generated by the moving image encoding method or apparatus described in the above embodiments.
  • the decoding processing unit ex801 that executes the moving picture decoding method described in each of the above embodiments is instructed to decode the video data.
  • the video data is video data compliant with the conventional standard, compared to the case where the video data is generated by the moving picture encoding method or apparatus shown in the above embodiments, Set the drive frequency low. Then, it instructs the decoding processing unit ex802 compliant with the conventional standard to decode the video data.
  • the drive frequency switching unit ex803 includes the CPU ex502 and the drive frequency control unit ex512 in FIG.
  • the decoding processing unit ex801 that executes the moving picture decoding method shown in each of the above embodiments and the decoding processing unit ex802 that complies with the conventional standard correspond to the signal processing unit ex507 in FIG.
  • the CPU ex502 identifies which standard the video data conforms to. Then, based on the signal from the CPU ex502, the drive frequency control unit ex512 sets the drive frequency. Further, based on the signal from the CPU ex502, the signal processing unit ex507 decodes the video data.
  • the identification information described in the fourth embodiment may be used.
  • the identification information is not limited to that described in the fourth embodiment, and any information that can identify which standard the video data conforms to may be used. For example, it is possible to identify which standard the video data conforms to based on an external signal that identifies whether the video data is used for a television or a disk. In some cases, identification may be performed based on such an external signal.
  • the selection of the driving frequency in the CPU ex502 may be performed based on, for example, a look-up table in which video data standards and driving frequencies are associated with each other as shown in FIG. The look-up table is stored in the buffer ex508 or the internal memory of the LSI, and the CPU ex502 can select the drive frequency by referring to the look-up table.
  • FIG. 27 shows steps for executing the method of the present embodiment.
  • the signal processing unit ex507 acquires identification information from the multiplexed data.
  • the CPU ex502 identifies whether the video data is generated by the encoding method or apparatus described in each of the above embodiments based on the identification information.
  • the CPU ex502 sends a signal for setting the drive frequency high to the drive frequency control unit ex512. Then, the drive frequency control unit ex512 sets a high drive frequency.
  • step exS203 the CPU ex502 drives the signal for setting the drive frequency low. This is sent to the frequency control unit ex512. Then, in the drive frequency control unit ex512, the drive frequency is set to be lower than that in the case where the video data is generated by the encoding method or apparatus described in the above embodiments.
  • the power saving effect can be further enhanced by changing the voltage applied to the LSI ex500 or the device including the LSI ex500 in conjunction with the switching of the driving frequency. For example, when the drive frequency is set low, it is conceivable that the voltage applied to the LSI ex500 or the device including the LSI ex500 is set low as compared with the case where the drive frequency is set high.
  • the setting method of the driving frequency may be set to a high driving frequency when the processing amount at the time of decoding is large, and to a low driving frequency when the processing amount at the time of decoding is small. It is not limited to the method.
  • the amount of processing for decoding video data compliant with the MPEG4-AVC standard is larger than the amount of processing for decoding video data generated by the moving picture encoding method or apparatus described in the above embodiments. It is conceivable that the setting of the driving frequency is reversed to that in the case described above.
  • the method for setting the drive frequency is not limited to the configuration in which the drive frequency is lowered.
  • the voltage applied to the LSIex500 or the apparatus including the LSIex500 is set high.
  • the driving of the CPU ex502 is stopped.
  • the CPU ex502 is temporarily stopped because there is room in processing. Is also possible. Even when the identification information indicates that the video data is generated by the moving image encoding method or apparatus described in each of the above embodiments, if there is a margin for processing, the CPU ex502 is temporarily driven. It can also be stopped. In this case, it is conceivable to set the stop time shorter than in the case where the video data conforms to the conventional standards such as MPEG-2, MPEG4-AVC, and VC-1.
  • a plurality of video data that conforms to different standards may be input to the above-described devices and systems such as a television and a mobile phone.
  • the signal processing unit ex507 of the LSI ex500 needs to support a plurality of standards in order to be able to decode even when a plurality of video data complying with different standards is input.
  • the signal processing unit ex507 corresponding to each standard is used individually, there is a problem that the circuit scale of the LSI ex500 increases and the cost increases.
  • a decoding processing unit for executing the moving picture decoding method shown in each of the above embodiments and a decoding conforming to a standard such as MPEG-2, MPEG4-AVC, or VC-1
  • the processing unit is partly shared.
  • An example of this configuration is shown as ex900 in FIG. 29A.
  • the moving picture decoding method shown in each of the above embodiments and the moving picture decoding method compliant with the MPEG4-AVC standard are processed in processes such as entropy coding, inverse quantization, deblocking filter, and motion compensation. Some contents are common.
  • the decoding processing unit ex902 corresponding to the MPEG4-AVC standard is shared, and for other processing contents specific to one aspect of the present invention that do not correspond to the MPEG4-AVC standard, a dedicated decoding processing unit A configuration using ex901 is conceivable.
  • a dedicated decoding processing unit ex901 is used for buffer control, and other dequantization, entropy decoding, and deblocking filters are used. It is conceivable to share a decoding processing unit for any or all of the motion compensation processes.
  • the decoding processing unit for executing the moving picture decoding method described in each of the above embodiments is shared, and the processing content specific to the MPEG4-AVC standard As for, a configuration using a dedicated decoding processing unit may be used.
  • ex1000 in FIG. 29B shows another example in which processing is partially shared.
  • a dedicated decoding processing unit ex1001 corresponding to the processing content specific to one aspect of the present invention
  • a dedicated decoding processing unit ex1002 corresponding to the processing content specific to another conventional standard
  • a common decoding processing unit ex1003 corresponding to the processing contents common to the moving image decoding method according to the above and other conventional moving image decoding methods.
  • the dedicated decoding processing units ex1001 and ex1002 are not necessarily specialized in one aspect of the present invention or processing content specific to other conventional standards, and can execute other general-purpose processing. Also good.
  • the configuration of the present embodiment can be implemented by LSI ex500.
  • the processing content common to the moving picture decoding method according to one aspect of the present invention and the moving picture decoding method of the conventional standard reduces the circuit scale of the LSI by sharing the decoding processing unit, In addition, the cost can be reduced.
  • the present invention can be applied to an image encoding method, an image decoding method, an image encoding device, and an image decoding device.
  • the present invention can also be used for high-resolution information display devices or imaging devices such as televisions, digital video recorders, car navigation systems, mobile phones, digital cameras, and digital video cameras that include an image encoding device.

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Abstract

La présente invention concerne un procédé de codage d'image destiné à coder des vidéos à points de vue multiples, comprenant : une étape de détermination (S101) consistant à déterminer, à l'aide d'une table (T1) et d'un signal de niveau (126) indiquant un niveau de traitement de codage, un nombre de pixels intra-écran maximum (127) et une taille de mémoire tampon maximum (128) qui est le nombre maximum d'images candidates de référence dans un codage sans point de vue multiple ; une première étape de calcul (S102) qui utilise le nombre de pixels intra-écran maximum (127), la taille d'image des images d'entrée (125), et le facteur d'échelle du codage de vidéo à points de vue multiples pour calculer un nombre maximum de vues (129) qui est le nombre maximum de vues candidates de référence utilisé dans le codage de prévision inter-vue ; et une seconde étape de calcul (S103) qui utilise le nombre maximum de vues (129) et la taille maximum de mémoire tampon (128) pour calculer une taille de mémoire tampon maximum MVC (130) qui est le nombre maximum d'images candidates de référence dans un codage de vue à points de vue multiples.
PCT/JP2013/004056 2012-07-09 2013-06-28 Procédé de codage d'image, procédé de décodage d'image, dispositif de codage d'image et dispositif de décodage d'image WO2014010192A1 (fr)

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JP2014524626A JPWO2014010192A1 (ja) 2012-07-09 2013-06-28 画像符号化方法、画像復号方法、画像符号化装置及び画像復号装置
US14/411,930 US9843819B2 (en) 2012-07-09 2013-06-28 Image encoding method, image decoding method, image encoding device, and image decoding device
EP13816103.9A EP2871838B1 (fr) 2012-07-09 2013-06-28 Procédé de codage d'image, dispositif de codage d'image
CN201380036063.6A CN104429075B (zh) 2012-07-09 2013-06-28 图像编码方法、图像解码方法、图像编码装置及图像解码装置

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JPWO2014010192A1 (ja) 2016-06-20
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